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Updated: Aug 6, 2026

Synergetic Use of Neural Precursor Cells and Self-assembling Peptides in Experimental Cervical Spinal Cord Injury
Published on: February 23, 2015
Polyamine metabolic reprogramming in ependymal cells promotes endogenous repair after spinal cord injury
Yaozhi He1, Qishun Liang2, Jiawei Wang2
1Department of Orthopedics (Spine Surgery), The First Affiliated Hospital of Wenzhou Medical University, Wenzhou, 325000, China; Department of Orthopedics Surgery, Affiliated Hangzhou First People's Hospital, Westlake University School of Medicine, Hangzhou, 310006, China.
Abstract:
The mechanisms underlying the activation of endogenous stem cells following spinal cord injury (SCI) remain a fundamental challenge in neural regeneration. Ependymal cells, which constitute a resident stem/progenitor population, possess latent regenerative potential, yet the metabolic cues governing their activation remain poorly understood. In this study, by integrating single-cell RNA sequencing with computational metabolic profiling, we systematically characterized the temporal transcriptional and metabolic reprogramming of injury-responsive ependymal cells after SCI. We found that SCI induces a metabolic switch characterized by marked upregulation of polyamine metabolism, which critically drives the transition of ependymal cells from quiescence to proliferation. Trajectory inference and metabolic analyses identified ornithine decarboxylase 1 (ODC1), a pyridoxal 5'-phosphate (PLP)-dependent rate-limiting enzyme in polyamine biosynthesis, as a key regulator of this fate transition. Mechanistically, molecular docking and molecular dynamics simulations revealed that PLP forms a stable covalent Schiff base with ODC1, thereby enhancing polyamine flux, remodeling the intracellular milieu and extracellular matrix, and ultimately establishing a regenerative niche. In a murine model of SCI, systemic PLP administration enhanced polyamine metabolism, promoted ependymal cell proliferation and tissue repair, and led to significant improvements in locomotor function. Collectively, this study identifies PLP-dependent ODC1-mediated polyamine metabolism as a mechanistically grounded and translationally actionable target for enhancing endogenous spinal cord regeneration.
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